Solubility-Driven Design of Multicomponent Self-Assembled Hydrogels

Abstract Nature has skillfully harnessed molecular social behavior, such as “co-assembly” and “self-sorting”, to achieve functional intricacy from simple building blocks. However, the rational control of such “social diversity” in synthetic supramolecular systems remains an unresolved problem. The entropy–enthalpy balance in hydrogelator self-assembly is a crucial thermodynamic parameter to control whether low molecular weight gelators (LMWGs) interact or act autonomously in multicomponent hydrogels. Here we propose that a simple inspection of the hydrogelator solubility vs temperature profile, as measured by 1H NMR, allows us to classify and select single-component hydrogelators in order to combine them at will. Thus, we demonstrate our hypothesis through an investigation of three individual LMWGs, with different solubility profiles, and their pairwise combinations to assess their assembly behavior over molecular, mesoscopic, and macroscopic length scales using a range of techniques. Our data show that one binary mixture exhibits co-assembly to form a unified network hydrogel material, whereas the other combinations display self-sorting, whereby each hydrogelator maintains its own structural integrity and intrinsic material properties. Crucially, temperature is used as an external stimulus to control these systems, providing direct and predictable control over material architecture. Our work highlights how simple NMR solubility measurements manifest the entropy–enthalpy balance as a rational approach to design multicomponent supramolecular materials with multifunctionality from simple and accessible molecular building blocks.

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Publication Details

Journal
Langmuir
Published
2026-09-18
DOI
https://doi.org/10.1021/acs.langmuir.6c03536
Primary Topic
Supramolecular Self-Assembly in Materials
Type
article
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article

Solubility-Driven Design of Multicomponent Self-Assembled Hydrogels

Peter Schmiedel, Florian Trummer, Beatriu Escuder, Thomas Sottmann et al.
Langmuir
Supramolecular Self-Assembly in Materials
article

Solubility-Driven Design of Multicomponent Self-Assembled Hydrogels

Peter Schmiedel, Florian Trummer, Beatriu Escuder, Thomas Sottmann, M. M. SINGH
article en

Abstract

Abstract Nature has skillfully harnessed molecular social behavior, such as “co-assembly” and “self-sorting”, to achieve functional intricacy from simple building blocks. However, the rational control of such “social diversity” in synthetic supramolecular systems remains an unresolved problem. The entropy–enthalpy balance in hydrogelator self-assembly is a crucial thermodynamic parameter to control whether low molecular weight gelators (LMWGs) interact or act autonomously in multicomponent hydrogels. Here we propose that a simple inspection of the hydrogelator solubility vs temperature profile, as measured by 1H NMR, allows us to classify and select single-component hydrogelators in order to combine them at will. Thus, we demonstrate our hypothesis through an investigation of three individual LMWGs, with different solubility profiles, and their pairwise combinations to assess their assembly behavior over molecular, mesoscopic, and macroscopic length scales using a range of techniques. Our data show that one binary mixture exhibits co-assembly to form a unified network hydrogel material, whereas the other combinations display self-sorting, whereby each hydrogelator maintains its own structural integrity and intrinsic material properties. Crucially, temperature is used as an external stimulus to control these systems, providing direct and predictable control over material architecture. Our work highlights how simple NMR solubility measurements manifest the entropy–enthalpy balance as a rational approach to design multicomponent supramolecular materials with multifunctionality from simple and accessible molecular building blocks.

Langmuir
University of Stuttgart (DE), Universitat Jaume I (ES), Henkel (Germany) (DE)
Reduced inequalities
Openalex Percentile: Top 21%
Supramolecular Self-Assembly in Materials
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